Numerical simulation of unsteady cavitating flows around a transient pitching hydrofoil

被引:0
|
作者
HUANG Biao [1 ]
WU Qin [1 ]
WANG GuoYu [1 ]
机构
[1] School of Mechanical and Vehicular Engineering, Beijing Institute of Technology
基金
中国国家自然科学基金;
关键词
unsteady cavitating flow; pitching hydrofoil; turbulence model;
D O I
暂无
中图分类号
V211.41 [机翼空气动力学];
学科分类号
0801 ; 080103 ; 080104 ;
摘要
The objective of this paper is to improve the understanding of the influence of multiphase flow on the turbulent closure model,the interplay between vorticity fields and cavity dynamics around a pitching hydrofoil.The effects of pitching rate on the subcavitating and cavitating response of the pitching hydrofoil are also investigated.In particular,we focus on the interactions between cavity inception,growth,and shedding and the vortex flow structures,and their impacts on the hydrofoil performance.The calculations are 2-D and performed by solving the incompressible,multiphase Unsteady Reynolds Averaged Navier Stokes(URANS)equations via the commercial CFD code CFX.The k-SST(Shear Stress Transport)turbulence model is used along with the transport equation-based cavitation models.The density correction function is considered to reduce the eddy viscosity according to the computed local fluid mixture density.The calculation results are validated with experiments conducted by Ducoin et al.(see Computational and experimental investigation of flow over a transient pitching hydrofoil,Eur J Mech/B Fluids,2009,28:728–743 and An experimental analysis of fluid structure interaction of a flexible hydrofoil in various flow regimes including cavitating flow,Eur J Mech B/fluids,2012,36:63–74).Results are shown for a NACA66 hydrofoil subject to slow(quasi static,6°/s,*0.18)and fast(dynamic,63°/s,*1.89)pitching motions from=0°to=15°.Both subcavitaing(=8.0)and cavitating(=3.0)flows are considered.For subcavitating flow(=8.0),low frequency fluctuations have been observed when the leading edge vortex shedding occurs during stall,and delay of stall is observed with increasing pitching velocity.For cavitating flow(=3.0),small leading edge cavities are observed with the slow pitching case,which significantly modified the vortex dynamics at high angles of attack,leading to high frequency fluctuations of the hydrodynamic coefficients and different stall behaviors compared to the subcavitating flow at the same pitching rate.On the other hand,for the fast pitching case at=3.0,large-scale sheet/cloud cavitation is observed,the cavity behavior is unsteady and has a strong impact on the hydrodynamic response,which leads to high amplitude fluctuations of the hydrodynamic coefficients,as well as significant changes in the stall and post-stall behavior.The numerical results also show that the local density modification helps to reduce turbulent eddy viscosity in the cavitating region,which significantly modifies the cavity lengths and shedding frequencies,particularly for the fast pitching case.In general,compared with the experimental visualizations,the numerical results with local density correction have been found to agree well with experimental measurements and observations for both slow and fast transient pitching cases.
引用
收藏
页码:101 / 116
页数:16
相关论文
共 50 条
  • [21] Numerical simulation of the three-dimensional unsteady cavitating flow around a twisted hydrofoil
    Liu, Zhihui
    Wang, Benlong
    OCEAN ENGINEERING, 2019, 188
  • [23] Numerical investigation of unsteady cavitating turbulent flows around twisted hydrofoil from the Lagrangian viewpoint
    程怀玉
    龙新平
    季斌
    祝叶
    周加建
    Journal of Hydrodynamics, 2016, 28 (04) : 709 - 712
  • [24] Numerical investigation of unsteady cavitating turbulent flows around twisted hydrofoil from the Lagrangian viewpoint
    Cheng, Huai-yu
    Long, Xin-ping
    Ji, Bin
    Zhu, Ye
    Zhou, Jia-jian
    JOURNAL OF HYDRODYNAMICS, 2016, 28 (04) : 709 - 712
  • [25] The interaction between the transient cavitating flow and hydrodynamic performance around a pitching hydrofoil
    Zhang, Mengjie
    Huang, Biao
    Wu, Qin
    Zhang, Mindi
    Wang, Guoyu
    RENEWABLE ENERGY, 2020, 161 : 1276 - 1291
  • [26] Vortex structure analysis of unsteady cloud cavitating flows around a hydrofoil
    Zhao, Yu
    Wang, Guoyu
    Huang, Biao
    MODERN PHYSICS LETTERS B, 2016, 30 (02):
  • [27] Numerical Prediction of Erosive Potential of Unsteady Cavitating Flow around Hydrofoil
    Sedlar, Milan
    Zima, Patrik
    Komarek, Martin
    AEROSPACE AND MECHANICAL ENGINEERING, 2014, 565 : 156 - +
  • [28] Turbulence Models on Simulation of Thermal Cavitating Flows around Hydrofoil
    Zhang D.
    Feng J.
    Wan F.
    Li J.
    Shi W.
    Nongye Jixie Xuebao/Transactions of the Chinese Society for Agricultural Machinery, 2020, 51 (05): : 134 - 141
  • [29] Preparation of experimental and numerical research on unsteady cavitating flow around hydrofoil
    Komarek, Martin
    Sedlar, Milan
    Vyroubal, Michal
    Zima, Patrik
    Mueller, Milos
    Palka, Tomas
    EFM14 - EXPERIMENTAL FLUID MECHANICS 2014, 2015, 92
  • [30] Numerical simulation of the unsteady behaviour of cavitating flows
    Coutier-Delgosha, O
    Reboud, JL
    Delannoy, Y
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2003, 42 (05) : 527 - 548